FG Thermische Energietechnik
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Institute
BTU
The present study investigates the fireside corrosion behavior of selected superheater materials, namely: T24, P92,
VM12-SHC, A800HT, and 7RE10 under oxy-coal combustion atmospheres. Data on mass change, scale thickness,
metal loss, surface morphology and micro-structural characteristics of corrosion products were obtained. The alloy
specimens were analyzed by SEM-EDX, light microscopy and X-Ray diffraction techniques. The results after
2000 hours of exposure at a metal surface temperature of 600 °C indicate that metal wastage increased with
decreasing Cr-content under oxy-coal conditions.
As power generation from variable renewable energy sources such as wind and solar power continues to increase in the future, fewer baseload power plants will be needed. As a result, high operational flexibility is becoming a vital requirement for conventional power plants to allow for the smooth integration of the variable renewable energy sources (v-RES) into the grid. To understand the impact of high operational flexibility (increased cycling) for coal-fired power plant materials, five commercial coal boiler superheater and reheater materials were investigated under isothermal and cyclic conditions for 1000 h each. The candidate alloys investigated were: T91, VM12-SHC, TP347-HFG, DMV304 HCu and DMV310 N. The results (weight change kinetics and metallographic analysis) after exposure at a metal surface temperature of 650 °C clearly showed the impact of increased flexibility on the corrosion and oxidation of the materials. Oxide growth (weight gain), metal loss, oxide spallation, and grain boundary attack were found to be more severe under cyclic conditions than under isothermal conditions.
Auswirkungen unscharfer Eingangsdaten auf Verfügbarkeitssimulation und Instandhaltungsoptimierung
(2009)
Electrochemical energy conversion technologies play a crucial role in space missions, for example, in the Environmental Control and Life Support System (ECLSS) on the International Space Station (ISS). They are also vitally important for future long-term space travel for oxygen, fuel and chemical production, where a re-supply of resources from Earth is not possible. Here, we provide an overview of currently existing electrolytic energy conversion technologies for space applications such as proton exchange membrane (PEM) and alkaline electrolyzer systems. We discuss the governing interfacial processes in these devices influenced by reduced gravitation and provide an outlook on future applications of electrolysis systems in, e.g., in-situ resource utilization (ISRU) technologies. A perspective of computational modelling to predict the impact of the reduced gravitational environment on governing electrochemical processes is also discussed and experimental suggestions to better understand efficiency-impacting processes such as gas bubble formation and detachment in reduced gravitational environments are outlined.
District heating dynamic models arise as an alternative approach to in-situ experimental investigations. The main advantage of dynamic modeling and simulation is the possibility to avoid technical and operational risks that might occur during in-situ experimental investigations (e.g. heat demand is not met, damages in the energy systems etc.). Within this study, the authors present two models for an existing district heating system in Cottbus, Germany. One model is developed using the tool EBSILON Professional, while the other one is developed using the Simscape toolbox for physical modeling in Matlab/Simulink. The models were experimentally validated against measured data from the considered district heating system. The results show that the Simscape model has a better fit and better response than the EBSILON model. Yet, some discrepancies were found between the measured and the simulated data and, therefore, the uncertainties of the models were addressed. A comparative study between both tools is presented. The EBSILON models permit only unidirectional flow, whereas the Simscape toolbox permits reverse flow. Nevertheless, the EBSILON model outperforms the Simscape model in computation time. In addition, this study presents an approach for dynamic thermo-hydraulic modeling of district heating networks. This approach is utilized to examine the role of district heating networks as heat storage as an optimization configuration. The numerical results show less start-ups for additional heat sources. Yet, higher heat losses from the network are observed due to the installation of unburied pipelines.
Untersuchungen zum Korrosionsverhalten ausgewählter Werkstoffe bei verschiedenen Betriebsbedingungen
(2009)
Corrosion Processes and Carbonisation of Boiler Materials under Air and Oxyfuel Process Conditions
(2011)
Wasserstoff – Elektrolyse
(2015)
Druckelektrolyse zur Wasserstoffherstellung- eine Kurzübersicht zu energetischen Vor- und Nachteilen
(2015)
Investigation of oxyfuel combustion by numerical simulation with different turbulent flow models
(2009)
From its foundation of the chair of power plant
technology at Brandenburg University of Technology
Cottbus – Senftenberg, the combustion
research has engaged with current issues of conventional
power plant technology. The focus of
his research activity was starting from development
of technology to maximize the efficiency,
switched to the new research field of oxyfuel
technologies and working currently on questions
about operational flexibility as reaction of
changes in the current energy sector. There are
many concepts for increasing plant flexibility,
but without optimization of flame monitoring
and re-evaluation of existing limits, this potential
for optimization can’t be sufficiently used.
The current research project to increasing thermal
plant flexibility of existing coal-fired power
plants is implementing the necessity for analysis
and optimization research. Therefore, one
goal is a significant progress in the evaluation
of cyclic operation with higher load transients
and load cycles of coal-fired power plants. Furthermore,
a research evaluation about the effects
on the components life of components of
the water-steam cycle is possible.
In diesem Beitrag wird ein Flammenbewertungsverfahren auf Basis eines Flammenwächtersignals vorgestellt. Mit zunehmender Flexibilisierung der Verbrennungsanlagen und der Absenkung von Emissionsgrenzwerten wird eine unmittelbare Flammenanalyse für die Regelung der Brennersysteme zunehmend erforderlich. Auf Basis eines Flammenwächtersignals wird mittels Frequenzanalyse ein ergänzendes Auswertungsverfahren dargestellt. Anhand der vorgestellten Untersuchungen an einem Erdgas-/Kohle-Kombibrenner wird die Qualifizierung der Prozessmesstechnik für die Flammenbewertung und Brennersteuerung überprüft. Die Ergebnisse im Erdgas- und Kohlebetrieb belegen, dass mit der erweiterten Signalanalyse eine Veränderung des Flammenverhaltens mit dem Flammenwächtersignal in Zusammenhang gebracht werden kann. Dabei konnte einmal das Emissionsverhalten bei verschiedenen Brennereinstellungen beurteilt werden und andererseits ein Zugriff auf das Stabilitätsverhalten der Kohleflamme ermöglicht werden. Durch die Analyse des Strahlungssignals der Chemilumineszenz des OH* bzw. CH*-Radikals ist ein Bezug zur Veränderung in der Reaktionszone hergestellt. Die entwickelte Bewertungsmethodik kann für die Entwicklung und Etablierung von Beobachter- und Regelmodellen von Brennersystemen genutzt werden.
Mit der steigenden Erzeugung volatilen Stroms aus erneuerbaren Energien werden die Anforderungen an die Flexibilität der konventionellen Kraftwerke erhöht. Der Einsatz von Stützfeuerungssystemen auf Basis von Trockenbraunkohle (TBK) ermöglicht die Erweiterung des Lastbereiches und der Lastgradienten am Dampferzeuger. Untersuchungen zum Teillastverhalten von TBK-Brennern wurden an der BTU Cottbus – Senftenberg an einem 400 kWth Verbrennungsversuchstand und an dem industriellen 30 MWth TBK-Staubbrenner der Firma BBS (Babcock Borsig Steinmüller GmbH) durchgeführt. Der verfügbare Einsatzbereich des Brenners ist maßgeblich von der Intensität den brennernahen Mischungsvorgang abhängig. Mit der Absenkung der Brennerleistung ist beispielsweise eine signifikante Steigerung der NOx-Emission verbunden. Dieser Effekt ist auf die Veränderung des brennernahen Strömungsprofiles zurückzuführen. Mit Maßnahmen wie der Erhöhung der Drallzahl, Verteilung der Luftimpulsströme und Veränderung des Primärimpulses konnte eine Stabilisierung und Intensivierung der Reaktionszone und somit eine Verbesserte des Teillastverhaltens nachgewiesen werden.
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